Title :
Improved analysis of antenna radiation from a circular aperture covered by a dielectric hemispherical radome shell
Author :
Li, L.W. ; Leong, M.S. ; Zhou, L. ; Yeo, T.S. ; Kooi, P.S.
Author_Institution :
Dept. of Electr. Eng., Nat. Univ. of Singapore, Singapore
fDate :
4/1/2000 12:00:00 AM
Abstract :
A novel full-wave analysis of the antenna radiation due to an aperture flush-mounted on a ground plane and excited by a circular waveguide TE11 wave is presented. The aperture is further covered by a dielectric hemispherical radome. Huygens´ equivalence principle and image theory are utilised to simplify the problem, and magnetic dyadic Green´s functions are employed to formulate both the reactional magnetic current distribution around the aperture and the inner near-zone and outer far-zone electromagnetic fields. The idea of reactional iteration is implemented in this work, and, hence, the final equivalent source is obtained in quite a compact form. Comparison between the results obtained and those published elsewhere in the literature shows the additional contributions to the equivalent magnetic source distribution and the near- and far-zone field patterns from the feedback of the electromagnetic fields reflected from the dielectric radome. Although applied only for a simple-layer dielectric radome, the method itself is not restricted by the number of layers and can easily be extended to a multi-layered radome or dielectric inhomogeneous radome
Keywords :
Green´s function methods; UHF antennas; antenna radiation patterns; aperture antennas; current distribution; iterative methods; microwave antennas; radomes; 3 GHz; Huygens equivalence principle; antenna radiation; circular aperture; circular waveguide TE11 wave; dielectric hemispherical radome shell; dielectric inhomogeneous radome; dielectric radome; equivalent magnetic source distribution; equivalent source; flush-mounted antenna; full-wave analysis; image theory; inner near-zone EM field; magnetic dyadic Green´s functions; multi-layered radome; outer far-zone electromagnetic field; reactional iteration; reactional magnetic current distribution; simple-layer dielectric radome;
Journal_Title :
Microwaves, Antennas and Propagation, IEE Proceedings
DOI :
10.1049/ip-map:20000217